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매립가스 발생량 및 폐기물 안정화 촉진을 위한 메탄생성균 활성 침출수 재순환 공법에 관한 연구

A Study on Methanogenic Bacteria-Activated Leachate Recirculation Method for Enhancing Waste Stabilization and Landfill Gas Production from a Solid waste Landfill

  • 발행 : 2012.06.30

초록

본 연구에서는 폐기물매립지에서 매립가스 및 폐기물 안정화 촉진을 위한 메탄생성균 활성 침출수 재순환 공법의 효과를 평가하였다. 기존 매립공법(Lys-A), 침출수 재순환 공법(Lys-B), ASBR 전처리 후 침출수 재순환 공법(Lys-C, Lys-D)을 묘사하기 위해 4개의 모의매립조를 만들어 4년 이상 운영하였다. Lys-D는 전처리된 침출수의 재순환 양을 Lys-C의 2배로 하였다. 침출수 재순환 공법과 ASBR 전처리 후 침출수 재순환 공법의 경우 600일까지 메탄발생량이 증가하였으나 600일 이후에는 침출수 재순환이 메탄발생량 증가에 미치는 영향은 거의 없는 것으로 나타났다. 이는 분해 가능한 유기물질이 부족할 경우 침출수의 재순환 효과가 없기 때문으로 판단된다. Lys-C와 Lys-D는 폐기물의 안정화촉진 뿐만 아니라 누적메탄수율도 가장 높은 것으로 나타났다. 누적메탄수율의 경우 Lys-C(35.51 mL $CH_4/g$ VS)와 Lys-D(36.12 mL $CH_4/g$ VS)는 Lys-A(28.37 mL $CH_4/g$ VS)와 Lys-B(30.07 mL $CH_4/g$ VS)보나 높게 나타났다. 침출수 재순환율이 동일한 Lys-B와 Lys-C의 경우 Lys-C의 COD 농도가 Lys-B보다 더욱 빠르게 감소하였다. 이는 메탄생성균 활성 침출수에 의해 저해물질의 희석뿐만 아니라 메탄생성균의 존재에 기인하는 것으로 사료된다. 따라서 ASBR 전처리 후 침출수 재순환 공법은 폐기물 안정화 및 매립가스 증대에 가장 적합한 것으로 판단된다.

The objective of this study was to assess the effects of methanogenic bacteria-activated leachate recirculation method for enhancing waste stabilization and landfill gas production from a solid waste landfill. To simulate a conventional landfill (Lys-A), a landfill recirculated only fresh leachate (Lys-B), and two landfills recirculated leachate after pretreating with ASBR (Lys-C and Lys-D), four lysimeters were operated over a period of 4 years. Lys-D was recirculated two times of pretreated leachate volume than that of Lys-C. In the case of the landfill recirculated only fresh leachate and the landfill recirculated leachate after pretreating with ASBR, methane productions were increased until about 600 days, but there were not effect of leachate recirculation for enhancing methane production after about 600 days. It was assumed that leachate recirculation into fewer biodegradable organic wastes had not effect to enhance landfill gas production. Lys-C and Lys-D showed the highest performance for enhancing cumulative methane yield as well as acceleration waste stabilization. In cumulative methane yield, Lys-C (35.51 mL $CH_4/g$ VS) and Lys-D (36.12 mL $CH_4/g$ VS) were much higher than Lys-A (28.37 mL $CH_4/g$ VS) and Lys-B (30.07 mL $CH_4/g$ VS). In case of between Lys-B and Lys-C with the same recirculation rate, COD concentration in Lys-C was more rapidly decreased compared with that in Lys-B. This was attributed to the presence of methanogenic bacteria as well as dilution of inhibitory substances by the methanogenic bacteria-activated leachate recirculation. Therefore, the landfill recirculated leachate after pretreating with ASBR was found to be the most appropriate operating techniques for enhancing waste stabilization and landfill gas production.

키워드

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